Cooling rate effects on the structure and transformation behavior of Cu-Zn-Al shape memory alloys

Nicoleta-Monica Lohan , Marius-Gabriel Suru , Bogdan Pricop , Leandru-Gheorghe Bujoreanu

International Journal of Minerals, Metallurgy, and Materials ›› 2014, Vol. 21 ›› Issue (11) : 1109 -1114.

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International Journal of Minerals, Metallurgy, and Materials ›› 2014, Vol. 21 ›› Issue (11) : 1109 -1114. DOI: 10.1007/s12613-014-1015-5
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Cooling rate effects on the structure and transformation behavior of Cu-Zn-Al shape memory alloys

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Abstract

Different fragments of a hot-rolled and homogenized Cu-Zn-Al shape memory alloy (SMA) were subjected to thermal cycling by means of a differential scanning calorimetric (DSC) device. During thermal cycling, heating was performed at the same constant rate of increasing temperature while cooling was carried out at different rates of decreasing temperature. For each cooling rate, the temperature decreased in the same thermal interval. During each cooling stage, an exothermic peak (maximum) was observed on the DSC thermogram. This peak was associated with forward martensitic transformation. The DSC thermograms were analyzed with PROTEUS software: the critical martensitic transformation start (Ms) and finish (Mf) temperatures were determined by means of integral and tangent methods, and the dissipated heat was evaluated by the area between the corresponding maximum plot and a sigmoid baseline. The effects of the increase in cooling rate, assessed from a calorimetric viewpoint, consisted in the augmentation of the exothermic peak and the delay of direct martensitic transformation. The latter had the tendency to move to lower critical transformation temperatures. The martensite plates changed in morphology by becoming more oriented and by an augmenting in surface relief, which corresponded with the increase in cooling rate as observed by scanning electron microscopy (SEM) and atomic force microscopy (AFM).

Keywords

copper alloys / shape memory effect / microstructure / phase transformations / martensite / cooling rate / differential scanning calorimetry

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Nicoleta-Monica Lohan, Marius-Gabriel Suru, Bogdan Pricop, Leandru-Gheorghe Bujoreanu. Cooling rate effects on the structure and transformation behavior of Cu-Zn-Al shape memory alloys. International Journal of Minerals, Metallurgy, and Materials, 2014, 21(11): 1109-1114 DOI:10.1007/s12613-014-1015-5

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References

[1]

Khan AQ, Delaey L. The martensite-plate-size dependence of yield strength of copper-aluminium-zinc martensite. Scripta Metall., 1970, 4(12): 981.

[2]

Tadaki T. Otsuka K, Wayman CM. Cu-based Shape Memory Alloys. Shape Memory Materials, 1998, Cambridge, Cambridge University Press, 97

[3]

Kumar PK, Lagoudas DC. Lagoudas DC. Introduction to Shape Memory Alloys. Shape Memory Alloy: Modelling and Engineering Applications, 2008, New York, Springer, 1.

[4]

Van Humbeeck J. Damping capacity of thermoelastic martensite in shape memory alloys. J. Alloys Compd., 2003, 355(1–2): 58.

[5]

Cortés JA, de la Garza R, Gallegos S, Florez L, Martínez M. Constitutive equation based on phase transformations for shape-memory actuators of reconfigurable systems. Mater. Manuf. Processes, 2007, 22(3): 318.

[6]

Dia V, Bujoreanu LG, Stanciu S, Munteanu C. Study of the shape memory effect in lamellar helical springs made from Cu-Zn-Al shape memory alloy. Mater. Sci. Eng. A, 2008, 481–482, 697.

[7]

Smart Mater. Struct., 2012, 21(1)

[8]

Vitel G, Suru MG, Paraschiv AL, Lohan NM, Pricop B, Baciu M, Bujoreanu LG. Structural effects of training cycles in shape memory actuators for temperature control. Mater. Manuf. Processes, 2012, 28(1): 79.

[9]

Bujoreanu LG, Lohan NM, Pricop B, Cimpoeşu N. Thermal memory degradation in a Cu-Zn-Al shape memory alloy during thermal cycling with free air cooling. J. Mater. Eng. Perform., 2011, 20(3): 468.

[10]

Bujoreanu LG, Lohan NM, Pricop B, Cimpoeşu N. On role of atomic migration in amnesia occurrence during complex thermal cycling of Cu-Zn-Al shape memory alloy. Mater. Sci. Technol., 2012, 28(6): 658.

[11]

Nam JM, Lee JH, Lee YJ, Nam TH. Cooling and heating characteristics of Ti-Ni based shape memory alloy wire actuators. Solid State Phenom., 2007, 124–126, 1649.

[12]

Lohan NM, Pricop B, Bujoreanu LG, Cimpoeşu N. Heating rate effects on reverse martensitic transformation in a Cu-Zn-Al shape memory alloy. Int. J. Mater. Res., 2011, 102(11): 1345.

[13]

Lohan NM, Bujoreanu LG, Baciu C. Influence of temperature variation rate on calorimetric response during heating and on martensite structure obtained after subsequent cooling of Cu-Zn-Al shape memory alloy. Micro Nano Lett., 2012, 7(6): 540.

[14]

Zhang YQ, Jiang SY, Zhao YN, Tang M. Influence of cooling rate on phase transformation and microstructure of Ti-50.9%Ni shape memory alloy. Trans. Nonferrous Met. Soc. China, 2012, 22(11): 2685.

[15]

Wang ZG, Zu XT, Huo Y. Effect of heating/cooling rate on the transformation temperatures in TiNiCu shape memory alloys. Thermochim. Acta, 2005, 436(1–2): 153.

[16]

Yu HJ, Zu XT, Fu H, Zhang XY, Wang ZG. Effect of annealing and heating/cooling rate on the transformation temperatures of NiFeGa alloy. J. Alloys Compd., 2009, 470(1–2): 237.

[17]

Nurveren K, Akdoğan A, Huang WM. Evolution of transformation characteristics with heating/cooling rate in NiTi shape memory alloys. J. Mater. Process. Technol., 2008, 196(1–3): 129.

[18]

An L, Huang WM. Transformation characteristics of shape memory alloys in a thermal cycle. Mater. Sci. Eng. A, 2006, 420(1–2): 220.

[19]

L.G. Bujoreanu, S. Stanciu, P. Bârsanescu, and N.M. Lohan, Study of the transitory formation of α1 bainite, as a precursor of α-phase in tempered SMAs, Proc SPIE Int Soc Opt Eng, 7297(2009), art. No. 72970B.

[20]

Patoor E, Lagoudas DC, Entchev PB, Brinson LC, Gao XJ. Shape memory alloys: Part I. General properties and modeling of single crystals. Mech. Mater., 2006, 38(5–6): 391.

[21]

Chang SH, Wu SK. Effect of cooling rate on transformation temperature measurements of Ti50Ni50 alloy by differential scanning calorimetry and dynamic mechanical analysis. Mater. Charact., 2008, 59(8): 987.

[22]

Benke M, Tranta F, Barkóczy P, Mertinger V, Daróczi L. Effects of heat-flux features on the differential scanning calorimetry curve of a thermoelastic martensitic transformation. Mater. Sci. Eng. A, 2008, 481–482, 522.

[23]

Pelegrina JL, Torra V. Comment on “Effects of heat-flux features on the differential scanning calorimetry curve of a thermoelastic martensitic transformation” by Benke et al. [Mater. Sci. Eng. A 481–482(2008), p. 522]. Mater. Sci. Eng. A, 2010, 527(9): 2437.

[24]

Suru MG, Paraschiv AL, Pricop B, Bujoreanu LG. A statistical evaluation of thermomechanical loading effects on martensite plate morphology in CuZnAl SMAs. Optoelectron. Adv. Mater., 2013, 7(1–2): 141

[25]

Cimpoeşu N, Ursanu AD, Stanciu S, Cimpoeşu R, Constantin B, Paraschiv C, Gurlui SO. Preliminary results of copper based shape memory alloys analyze used for MEMS applications. Appl. Mech. Mater., 2013, 371, 368.

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